Group velocityThe group velocity of a wave is the velocity with which the overall envelope shape of the wave's amplitudes—known as the modulation or envelope of the wave—propagates through space. For example, if a stone is thrown into the middle of a very still pond, a circular pattern of waves with a quiescent center appears in the water, also known as a capillary wave. The expanding ring of waves is the wave group or wave packet, within which one can discern individual waves that travel faster than the group as a whole.
Vitesse d'une ondeUne onde est une perturbation qui se déplace dans un milieu. Il est possible de lui associer deux vitesses d'onde, soit la vitesse de phase et la vitesse de groupe qui, parfois, ne sont pas égales : Dans un milieu homogène, la propagation dans une direction donnée d'une onde monochromatique (ou sinusoïdale) se traduit par une translation de la sinusoïde à une vitesse appelée « vitesse de phase » ou « célérité ». Dans un milieu non dispersif, cette vitesse ne dépend pas de la fréquence.
Relation de dispersionEn physique théorique, une relation de dispersion est une relation entre la pulsation et le vecteur d'onde d'une onde monochromatique. Par extension, la dualité onde-corpuscule de la physique quantique conduit à l'introduction de relation de dispersion pour une particule, comme relation entre son énergie et sa quantité de mouvement . Un milieu non dispersif est caractérisé par un indice indépendant de la pulsation. La relation de dispersion s'écritavec le vecteur d'onde.
Dispersion (mécanique ondulatoire)vignette|Dispersion de la lumière blanche au passage d'un dioptre. En mécanique ondulatoire, la dispersion est le phénomène affectant une onde se propageant dans un milieu dit « dispersif », c'est-à-dire dans lequel les différentes longueurs d’onde constituant l'onde ne se propagent pas à la même vitesse. On rencontre ce phénomène pour tous types d'ondes, comme la lumière, le son et les ondes mécaniques (vagues, séismes, etc.). À l'exception du vide, tous les milieux sont dispersifs à des degrés divers.
Propagation constantThe propagation constant of a sinusoidal electromagnetic wave is a measure of the change undergone by the amplitude and phase of the wave as it propagates in a given direction. The quantity being measured can be the voltage, the current in a circuit, or a field vector such as electric field strength or flux density. The propagation constant itself measures the change per unit length, but it is otherwise dimensionless. In the context of two-port networks and their cascades, propagation constant measures the change undergone by the source quantity as it propagates from one port to the next.
Indicateur de dispersionEn statistique, un indicateur de dispersion mesure la variabilité des valeurs d’une série statistique. Il est toujours positif et d’autant plus grand que les valeurs de la série sont étalées. Les plus courants sont la variance, l'écart-type et l'écart interquartile. Ces indicateurs complètent l’information apportée par les indicateurs de position ou de tendance centrale, mesurés par la moyenne ou la médiane. Dans la pratique, c'est-à-dire dans l'industrie, les laboratoires ou en métrologie, où s'effectuent des mesurages, cette dispersion est estimée par l'écart type.
Single-mode optical fiberIn fiber-optic communication, a single-mode optical fiber (SMF), also known as fundamental- or mono-mode, is an optical fiber designed to carry only a single mode of light - the transverse mode. Modes are the possible solutions of the Helmholtz equation for waves, which is obtained by combining Maxwell's equations and the boundary conditions. These modes define the way the wave travels through space, i.e. how the wave is distributed in space. Waves can have the same mode but have different frequencies.
Transformation de Fourierthumb|Portrait de Joseph Fourier. En mathématiques, plus précisément en analyse, la transformation de Fourier est une extension, pour les fonctions non périodiques, du développement en série de Fourier des fonctions périodiques. La transformation de Fourier associe à toute fonction intégrable définie sur R et à valeurs réelles ou complexes, une autre fonction sur R appelée transformée de Fourier dont la variable indépendante peut s'interpréter en physique comme la fréquence ou la pulsation.
Multi-mode optical fiberMulti-mode optical fiber is a type of optical fiber mostly used for communication over short distances, such as within a building or on a campus. Multi-mode links can be used for data rates up to 100 Gbit/s. Multi-mode fiber has a fairly large core diameter that enables multiple light modes to be propagated and limits the maximum length of a transmission link because of modal dispersion. The standard G.651.1 defines the most widely used forms of multi-mode optical fiber.
Fourier analysisIn mathematics, Fourier analysis (ˈfʊrieɪ,_-iər) is the study of the way general functions may be represented or approximated by sums of simpler trigonometric functions. Fourier analysis grew from the study of Fourier series, and is named after Joseph Fourier, who showed that representing a function as a sum of trigonometric functions greatly simplifies the study of heat transfer. The subject of Fourier analysis encompasses a vast spectrum of mathematics.
Transformation de Fourier discrèteEn mathématiques, la transformation de Fourier discrète (TFD) sert à traiter un signal numérique. Elle constitue un équivalent discret (c'est-à-dire pour un signal défini à partir d'un nombre fini d'échantillons) de la transformation de Fourier (continue) utilisée pour traiter un signal analogique. Plus précisément, la TFD est la représentation spectrale discrète dans le domaine des fréquences d'un signal échantillonné. La transformation de Fourier rapide est un algorithme particulier de calcul de la transformation de Fourier discrète.
Fibre optiqueUne fibre optique est un fil dont l’âme, très fine et faite de verre ou de plastique, a la propriété de conduire la lumière et sert pour la fibroscopie, l'éclairage ou la transmission de données numériques. Elle offre un débit d'information nettement supérieur à celui des câbles coaxiaux et peut servir de support à un réseau « large bande » par lequel transitent aussi bien la télévision, le téléphone, la visioconférence ou les données informatiques.
Signal velocityThe signal velocity is the speed at which a wave carries information. It describes how quickly a message can be communicated (using any particular method) between two separated parties. No signal velocity can exceed the speed of a light pulse in a vacuum (by Special Relativity). Signal velocity is usually equal to group velocity (the speed of a short "pulse" or of a wave-packet's middle or "envelope"). However, in a few special cases (e.g.
Primary line constantsThe primary line constants are parameters that describe the characteristics of conductive transmission lines, such as pairs of copper wires, in terms of the physical electrical properties of the line. The primary line constants are only relevant to transmission lines and are to be contrasted with the secondary line constants, which can be derived from them, and are more generally applicable. The secondary line constants can be used, for instance, to compare the characteristics of a waveguide to a copper line, whereas the primary constants have no meaning for a waveguide.
Discrete-time Fourier transformIn mathematics, the discrete-time Fourier transform (DTFT), also called the finite Fourier transform, is a form of Fourier analysis that is applicable to a sequence of values. The DTFT is often used to analyze samples of a continuous function. The term discrete-time refers to the fact that the transform operates on discrete data, often samples whose interval has units of time. From uniformly spaced samples it produces a function of frequency that is a periodic summation of the continuous Fourier transform of the original continuous function.
Fiber-optic communicationFiber-optic communication is a method of transmitting information from one place to another by sending pulses of infrared or visible light through an optical fiber. The light is a form of carrier wave that is modulated to carry information. Fiber is preferred over electrical cabling when high bandwidth, long distance, or immunity to electromagnetic interference is required. This type of communication can transmit voice, video, and telemetry through local area networks or across long distances.
Fractional Fourier transformIn mathematics, in the area of harmonic analysis, the fractional Fourier transform (FRFT) is a family of linear transformations generalizing the Fourier transform. It can be thought of as the Fourier transform to the n-th power, where n need not be an integer — thus, it can transform a function to any intermediate domain between time and frequency. Its applications range from filter design and signal analysis to phase retrieval and pattern recognition.
Non-uniform discrete Fourier transformIn applied mathematics, the nonuniform discrete Fourier transform (NUDFT or NDFT) of a signal is a type of Fourier transform, related to a discrete Fourier transform or discrete-time Fourier transform, but in which the input signal is not sampled at equally spaced points or frequencies (or both). It is a generalization of the shifted DFT. It has important applications in signal processing, magnetic resonance imaging, and the numerical solution of partial differential equations.
Polarization-maintaining optical fiberIn fiber optics, polarization-maintaining optical fiber (PMF or PM fiber) is a single-mode optical fiber in which linearly polarized light, if properly launched into the fiber, maintains a linear polarization during propagation, exiting the fiber in a specific linear polarization state; there is little or no cross-coupling of optical power between the two polarization modes. Such fiber is used in special applications where preserving polarization is essential.
Transverse modeA transverse mode of electromagnetic radiation is a particular electromagnetic field pattern of the radiation in the plane perpendicular (i.e., transverse) to the radiation's propagation direction. Transverse modes occur in radio waves and microwaves confined to a waveguide, and also in light waves in an optical fiber and in a laser's optical resonator. Transverse modes occur because of boundary conditions imposed on the wave by the waveguide.